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In PHP, I would like to know what array(&$this) means.

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    It means you're using a PHP4 script :) PHP 5 will always pass references of objects, so it's not necessary to denote it as a reference. – Berry Langerak Apr 24 '12 at 8:09
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It's a construct that initializes an array which contains one element: a reference to the object the array is initialized in. Inside every class, you can refer to the "current" instance using $this.

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  • also one should note that this construct (array(&$something)) can be used as a workaround to use the "pass by reference" to a function that has default parameters. There is a big discussion going on about this in the comments section of the PHP manual – Kaii Apr 24 '12 at 8:10
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Its PHPs pass by reference construction. Typically this means that a reference to the parameter is passed to the function instead of a copy of the value, so that modifications inside the function affect the object.

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  • and &$this refers to the array ? – JeanDavidDaviet Apr 24 '12 at 8:07
  • @Jasper: Sorry, sorting out the details took longer than I expected. – Anders Lindahl Apr 24 '12 at 8:13
  • @Zaidar: No, &$this refers to "the current object" - the current instance of the class the code is in. – Anders Lindahl Apr 24 '12 at 8:15
  • There is no "passing" here. – newacct Dec 12 '13 at 8:26
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This is creating an array with a single element. The element is a reference to the object from which it is executed it. For more information see the documentation on passing by reference.

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